论文标题

用于模块化组装和可重构形态体系结构的磁动力聚合物

Magnetic Dynamic Polymers for Modular Assembling and Reconfigurable Morphing Architectures

论文作者

Kuang, Xiao, Wu, Shuai, Jin, Yi, Ze, Qiji, Montgomery, S. Macrae, Yue, Liang, Qi, H. Jerry, Zhao, Ruike

论文摘要

形状变形磁性软材料,由软聚合物基质中的磁颗粒组成,可以可逆地,远程和迅速地转化形状,从而在执行器,软机器人和生物医学设备中找到各种应用。为了实现按需和复杂的形状变形,高度需要具有复杂几何形状和磁化分布的结构的制造。在这里,我们报告了具有热反应性可逆连接的动态聚合物网络中由硬磁性微粒组成的磁动力学聚合物复合材料,该链接允许功能,包括靶向焊接,磁化重编程和结构重新配置。这些功能不仅提供了高度理想的结构和材料可编程性和重编程性,而且还可以实现具有复杂几何形状和磁化分布的结构的制造。利用有针对性的焊接用于具有具有特定逻辑的基本建筑模块的模块化组装,以进行复杂的驱动。磁化重新编程可以改变制成结构的变形模式。磁性致动物下的形状重新配置与网络可塑性相结合,以远程将二维镶嵌变成复杂的三维体系结构,从而提供了制造功能性软架构材料(如三维Kirigami)的新策略。我们预计,所报道的磁动力聚合物为未来多功能组件的设计和制造提供了新的范式,并为可重新配置的变形体系结构和设备提供了新的范式。

Shape morphing magnetic soft materials, composed of magnetic particles in a soft polymer matrix, can transform shapes reversibly, remotely, and rapidly, finding diverse applications in actuators, soft robotics, and biomedical devices. To achieve on-demand and sophisticated shape morphing, the manufacturing of structures with complex geometry and magnetization distribution is highly desired. Here, we report a magnetic dynamic polymer composite composed of hard-magnetic microparticles in a dynamic polymer network with thermal-responsive reversible linkages, which permit functionalities including targeted welding, magnetization reprogramming, and structural reconfiguration. These functions not only provide highly desirable structural and material programmability and reprogrammability but also enable the manufacturing of structures with complex geometry and magnetization distribution. The targeted welding is exploited for modular assembling of fundamental building modules with specific logics for complex actuation. The magnetization reprogramming enables altering the morphing mode of the manufactured structures. The shape reconfiguration under magnetic actuation is coupled with network plasticity to remotely transform two-dimensional tessellations into complex three-dimensional architectures, providing a new strategy of manufacturing functional soft architected materials such as three-dimensional kirigami. We anticipate that the reported magnetic dynamic polymer provides a new paradigm for the design and manufacturing of future multifunctional assemblies and reconfigurable morphing architectures and devices.

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